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Identifying a facet type takes both a self and facet type as a pair, and then encode the self into the IdentifiedFacetType. This makes a constraint that requires some _other_ type implements an interface visible in the IdentifiedFacetType. And it will help to enable facet types with `where T impls Z` for `T` that is not `.Self` in the future. IdentifiedFacetTypes are now stored in a CanonicalValueStore instead of a RelationalValueStore as they key is the combination of self and (declared) facet type together now. When the self-type is a facet value (has type FacetType) this is most straightforward. But when it's a type we need to construct a FacetValue to construct a specific for a require decl, to replace the generic binding of the symbolic `Self`, which has type FacetType. To do so, we make a FacetValue with an empty FacetType (equivalent to TypeType). This prevents any looking for witnesses through the FacetType, which matches what you can get from a type directly, requiring witnesses to come from finding an `impl` decl. Add additional InstNamer logic for such empty facet types so they print as `<typename>.type.facet` if possible instead of as just `facet_value`.
460 lines
19 KiB
C++
460 lines
19 KiB
C++
// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
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// Exceptions. See /LICENSE for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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#include "toolchain/check/context.h"
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#include "toolchain/check/convert.h"
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#include "toolchain/check/facet_type.h"
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#include "toolchain/check/handle.h"
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#include "toolchain/check/inst.h"
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#include "toolchain/check/interface.h"
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#include "toolchain/check/name_lookup.h"
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#include "toolchain/check/pattern.h"
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#include "toolchain/check/return.h"
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#include "toolchain/check/type.h"
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#include "toolchain/check/type_completion.h"
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#include "toolchain/diagnostics/format_providers.h"
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#include "toolchain/parse/node_ids.h"
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#include "toolchain/sem_ir/ids.h"
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#include "toolchain/sem_ir/inst.h"
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#include "toolchain/sem_ir/pattern.h"
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#include "toolchain/sem_ir/typed_insts.h"
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namespace Carbon::Check {
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auto HandleParseNode(Context& context, Parse::UnderscoreNameId node_id)
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-> bool {
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context.node_stack().Push(node_id, SemIR::NameId::Underscore);
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return true;
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}
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// Returns the `InstKind` corresponding to the pattern's `NodeKind`.
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static auto GetPatternInstKind(Parse::NodeKind node_kind, bool is_ref)
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-> SemIR::InstKind {
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switch (node_kind) {
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case Parse::NodeKind::CompileTimeBindingPattern:
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return SemIR::InstKind::SymbolicBindingPattern;
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case Parse::NodeKind::LetBindingPattern:
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return is_ref ? SemIR::InstKind::RefBindingPattern
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: SemIR::InstKind::ValueBindingPattern;
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case Parse::NodeKind::VarBindingPattern:
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return SemIR::InstKind::RefBindingPattern;
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default:
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CARBON_FATAL("Unexpected node kind: {0}", node_kind);
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}
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}
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// Returns true if a parameter is valid in the given `introducer_kind`.
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static auto IsValidParamForIntroducer(Context& context, Parse::NodeId node_id,
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SemIR::NameId name_id,
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Lex::TokenKind introducer_kind,
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bool is_generic) -> bool {
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switch (introducer_kind) {
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case Lex::TokenKind::Fn: {
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if (context.full_pattern_stack().CurrentKind() ==
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FullPatternStack::Kind::ImplicitParamList &&
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!(is_generic || name_id == SemIR::NameId::SelfValue)) {
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CARBON_DIAGNOSTIC(
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ImplictParamMustBeConstant, Error,
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"implicit parameters of functions must be constant or `self`");
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context.emitter().Emit(node_id, ImplictParamMustBeConstant);
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return false;
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}
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// Parameters can have incomplete types in a function declaration, but not
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// in a function definition. We don't know which kind we have here, so
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// don't validate it.
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return true;
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}
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case Lex::TokenKind::Choice:
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if (context.scope_stack().PeekInstId().has_value()) {
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// We are building a pattern for a choice alternative, not the
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// choice type itself.
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// Implicit param lists are prevented during parse.
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CARBON_CHECK(context.full_pattern_stack().CurrentKind() !=
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FullPatternStack::Kind::ImplicitParamList,
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"choice alternative with implicit parameters");
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// Don't fall through to the `Class` logic for choice alternatives.
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return true;
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}
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[[fallthrough]];
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case Lex::TokenKind::Class:
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case Lex::TokenKind::Impl:
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case Lex::TokenKind::Interface: {
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if (name_id == SemIR::NameId::SelfValue) {
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CARBON_DIAGNOSTIC(SelfParameterNotAllowed, Error,
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"`self` parameter only allowed on functions");
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context.emitter().Emit(node_id, SelfParameterNotAllowed);
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return false;
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}
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if (!is_generic) {
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CARBON_DIAGNOSTIC(GenericParamMustBeConstant, Error,
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"parameters of generic types must be constant");
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context.emitter().Emit(node_id, GenericParamMustBeConstant);
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return false;
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}
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return true;
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}
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default:
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return true;
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}
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}
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// TODO: make this function shorter by factoring pieces out.
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static auto HandleAnyBindingPattern(Context& context, Parse::NodeId node_id,
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Parse::NodeKind node_kind) -> bool {
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// TODO: split this into smaller, more focused functions.
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auto [type_node, parsed_type_id] = context.node_stack().PopExprWithNodeId();
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auto [cast_type_inst_id, cast_type_id] =
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ExprAsType(context, type_node, parsed_type_id);
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SemIR::ExprRegionId type_expr_region_id =
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EndSubpatternAsExpr(context, cast_type_inst_id);
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// The name in a generic binding may be wrapped in `template`.
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bool is_generic = node_kind == Parse::NodeKind::CompileTimeBindingPattern;
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bool is_template =
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context.node_stack()
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.PopAndDiscardSoloNodeIdIf<Parse::NodeKind::TemplateBindingName>();
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// A non-generic template binding is diagnosed by the parser.
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is_template &= is_generic;
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// The name in a runtime binding may be wrapped in `ref`.
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bool is_ref =
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context.node_stack()
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.PopAndDiscardSoloNodeIdIf<Parse::NodeKind::RefBindingName>();
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SemIR::InstKind pattern_inst_kind = GetPatternInstKind(node_kind, is_ref);
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auto [name_node, name_id] = context.node_stack().PopNameWithNodeId();
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const DeclIntroducerState& introducer =
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context.decl_introducer_state_stack().innermost();
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auto make_binding_pattern = [&]() -> SemIR::InstId {
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// TODO: Eventually the name will need to support associations with other
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// scopes, but right now we don't support qualified names here.
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auto binding =
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AddBindingPattern(context, name_node, name_id, cast_type_id,
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type_expr_region_id, pattern_inst_kind, is_template);
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// TODO: If `is_generic`, then `binding.bind_id is a SymbolicBinding. Subst
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// the `.Self` of type `type` in the `cast_type_id` type (a `FacetType`)
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// with the `binding.bind_id` itself, and build a new pattern with that.
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// This is kind of cyclical. So we need to reuse the EntityNameId, which
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// will also reuse the CompileTimeBinding for the new SymbolicBinding.
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if (name_id != SemIR::NameId::Underscore) {
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// Add name to lookup immediately, so it can be used in the rest of the
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// enclosing pattern.
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auto name_context =
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context.decl_name_stack().MakeUnqualifiedName(name_node, name_id);
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context.decl_name_stack().AddNameOrDiagnose(
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name_context, binding.bind_id,
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introducer.modifier_set.GetAccessKind());
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context.full_pattern_stack().AddBindName(name_id);
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}
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return binding.pattern_id;
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};
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auto abstract_diagnoser = [&] {
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CARBON_DIAGNOSTIC(AbstractTypeInVarPattern, Error,
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"binding pattern has abstract type {0} in `var` "
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"pattern",
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SemIR::TypeId);
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return context.emitter().Build(type_node, AbstractTypeInVarPattern,
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cast_type_id);
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};
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// A `self` binding can only appear in an implicit parameter list.
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if (name_id == SemIR::NameId::SelfValue &&
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!context.node_stack().PeekIs(Parse::NodeKind::ImplicitParamListStart)) {
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CARBON_DIAGNOSTIC(
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SelfOutsideImplicitParamList, Error,
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"`self` can only be declared in an implicit parameter list");
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context.emitter().Emit(node_id, SelfOutsideImplicitParamList);
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}
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if (node_kind == Parse::NodeKind::CompileTimeBindingPattern &&
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introducer.kind == Lex::TokenKind::Let) {
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// TODO: We should re-evaluate the contents of the eval block in a
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// synthesized specific to form these values, in order to propagate the
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// values.
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return context.TODO(node_id,
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"local `let :!` bindings are currently unsupported");
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}
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// Allocate an instruction of the appropriate kind, linked to the name for
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// error locations.
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switch (context.full_pattern_stack().CurrentKind()) {
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case FullPatternStack::Kind::ImplicitParamList:
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case FullPatternStack::Kind::ExplicitParamList: {
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if (!IsValidParamForIntroducer(context, node_id, name_id, introducer.kind,
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is_generic)) {
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if (name_id != SemIR::NameId::Underscore) {
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AddNameToLookup(context, name_id, SemIR::ErrorInst::InstId);
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}
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// Replace the parameter with `ErrorInst` so that we don't try
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// constructing a generic based on it.
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context.node_stack().Push(node_id, SemIR::ErrorInst::InstId);
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break;
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}
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// Using `AsConcreteType` here causes `fn F[var self: Self]();`
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// to fail since `Self` is an incomplete type.
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if (node_kind == Parse::NodeKind::VarBindingPattern) {
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auto [unqualified_type_id, qualifiers] =
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context.types().GetUnqualifiedTypeAndQualifiers(cast_type_id);
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if ((qualifiers & SemIR::TypeQualifiers::Partial) !=
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SemIR::TypeQualifiers::Partial &&
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context.types().Is<SemIR::ClassType>(unqualified_type_id)) {
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auto class_type =
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context.types().GetAs<SemIR::ClassType>(unqualified_type_id);
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auto& class_info = context.classes().Get(class_type.class_id);
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if (class_info.inheritance_kind ==
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SemIR::Class::InheritanceKind::Abstract) {
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auto builder = abstract_diagnoser();
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auto direct_use = true;
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NoteAbstractClass(context, class_type.class_id, direct_use,
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builder);
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builder.Emit();
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cast_type_id = SemIR::ErrorInst::TypeId;
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}
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}
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}
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auto result_inst_id = make_binding_pattern();
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// A binding pattern in a function signature is a `Call` parameter
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// unless it's nested inside a `var` pattern (because then the
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// enclosing `var` pattern is), or it's a compile-time binding pattern
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// (because then it's not passed to the `Call` inst).
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if (node_kind == Parse::NodeKind::LetBindingPattern) {
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auto type_id = context.insts().GetAttachedType(result_inst_id);
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if (is_ref) {
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result_inst_id = AddPatternInst<SemIR::RefParamPattern>(
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context, node_id,
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{.type_id = type_id,
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.subpattern_id = result_inst_id,
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.index = context.full_pattern_stack().NextCallParamIndex()});
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} else {
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result_inst_id = AddPatternInst<SemIR::ValueParamPattern>(
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context, node_id,
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{.type_id = type_id,
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.subpattern_id = result_inst_id,
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.index = context.full_pattern_stack().NextCallParamIndex()});
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}
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}
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context.node_stack().Push(node_id, result_inst_id);
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break;
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}
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case FullPatternStack::Kind::NameBindingDecl: {
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auto incomplete_diagnoser = [&] {
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CARBON_DIAGNOSTIC(IncompleteTypeInBindingDecl, Error,
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"binding pattern has incomplete type {0} in name "
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"binding declaration",
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InstIdAsType);
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return context.emitter().Build(type_node, IncompleteTypeInBindingDecl,
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cast_type_inst_id);
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};
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if (node_kind == Parse::NodeKind::VarBindingPattern) {
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cast_type_id = AsConcreteType(context, cast_type_id, type_node,
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incomplete_diagnoser, abstract_diagnoser);
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} else {
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cast_type_id = AsCompleteType(context, cast_type_id, type_node,
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incomplete_diagnoser);
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}
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auto binding_pattern_id = make_binding_pattern();
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if (node_kind == Parse::NodeKind::VarBindingPattern) {
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CARBON_CHECK(!is_generic);
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if (introducer.modifier_set.HasAnyOf(KeywordModifierSet::Returned)) {
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// TODO: Should we check this for the `var` as a whole, rather than
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// for the name binding?
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auto bind_id = context.bind_name_map()
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.Lookup(binding_pattern_id)
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.value()
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.bind_name_id;
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RegisterReturnedVar(context,
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introducer.modifier_node_id(ModifierOrder::Decl),
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type_node, cast_type_id, bind_id);
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}
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}
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context.node_stack().Push(node_id, binding_pattern_id);
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break;
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}
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}
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return true;
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}
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auto HandleParseNode(Context& context, Parse::LetBindingPatternId node_id)
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-> bool {
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return HandleAnyBindingPattern(context, node_id,
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Parse::NodeKind::LetBindingPattern);
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}
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auto HandleParseNode(Context& context, Parse::VarBindingPatternId node_id)
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-> bool {
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return HandleAnyBindingPattern(context, node_id,
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Parse::NodeKind::VarBindingPattern);
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}
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auto HandleParseNode(Context& context,
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Parse::CompileTimeBindingPatternStartId /*node_id*/)
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-> bool {
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// Make a scope to contain the `.Self` facet value for use in the type of the
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// compile time binding. This is popped when handling the
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// CompileTimeBindingPatternId.
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context.scope_stack().PushForSameRegion();
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// The `.Self` must have a type of `FacetType`, so that it gets wrapped in
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// `FacetAccessType` when used in a type position, such as in `U:! I(.Self)`.
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// This allows substitution with other facet values without requiring an
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// additional `FacetAccessType` to be inserted.
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auto type_id = GetEmptyFacetType(context);
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MakePeriodSelfFacetValue(context, type_id);
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return true;
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}
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auto HandleParseNode(Context& context,
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Parse::CompileTimeBindingPatternId node_id) -> bool {
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// Pop the `.Self` facet value name introduced by the
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// CompileTimeBindingPatternStart.
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context.scope_stack().Pop();
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auto node_kind = Parse::NodeKind::CompileTimeBindingPattern;
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const DeclIntroducerState& introducer =
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context.decl_introducer_state_stack().innermost();
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if (introducer.kind == Lex::TokenKind::Let) {
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// Disallow `let` outside of function and interface definitions.
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// TODO: Find a less brittle way of doing this. A `scope_inst_id` of `None`
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// can represent a block scope, but is also used for other kinds of scopes
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// that aren't necessarily part of a function decl.
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// We don't need to check if the scope is an interface here as this is
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// already caught in the parse phase by the separated associated constant
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// logic.
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auto scope_inst_id = context.scope_stack().PeekInstId();
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if (scope_inst_id.has_value()) {
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auto scope_inst = context.insts().Get(scope_inst_id);
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if (!scope_inst.Is<SemIR::FunctionDecl>()) {
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context.TODO(
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node_id,
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"`let` compile time binding outside function or interface");
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node_kind = Parse::NodeKind::LetBindingPattern;
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}
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}
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}
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return HandleAnyBindingPattern(context, node_id, node_kind);
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}
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auto HandleParseNode(Context& context,
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Parse::AssociatedConstantNameAndTypeId node_id) -> bool {
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auto [type_node, parsed_type_id] = context.node_stack().PopExprWithNodeId();
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auto [cast_type_inst_id, cast_type_id] =
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ExprAsType(context, type_node, parsed_type_id);
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EndSubpatternAsExpr(context, cast_type_inst_id);
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auto [name_node, name_id] = context.node_stack().PopNameWithNodeId();
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if (name_id == SemIR::NameId::Underscore) {
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// The action item here may be to document this as not allowed, and
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// add a proper diagnostic.
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context.TODO(node_id, "_ used as associated constant name");
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}
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cast_type_id = AsCompleteType(context, cast_type_id, type_node, [&] {
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CARBON_DIAGNOSTIC(IncompleteTypeInAssociatedConstantDecl, Error,
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"associated constant has incomplete type {0}",
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SemIR::TypeId);
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return context.emitter().Build(
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type_node, IncompleteTypeInAssociatedConstantDecl, cast_type_id);
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});
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SemIR::AssociatedConstantDecl assoc_const_decl = {
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.type_id = cast_type_id,
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.assoc_const_id = SemIR::AssociatedConstantId::None,
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.decl_block_id = SemIR::InstBlockId::None};
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auto decl_id =
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AddPlaceholderInstInNoBlock(context, node_id, assoc_const_decl);
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assoc_const_decl.assoc_const_id = context.associated_constants().Add(
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{.name_id = name_id,
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.parent_scope_id = context.scope_stack().PeekNameScopeId(),
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.decl_id = decl_id,
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.generic_id = SemIR::GenericId::None,
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.default_value_id = SemIR::InstId::None});
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ReplaceInstBeforeConstantUse(context, decl_id, assoc_const_decl);
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context.node_stack().Push(node_id, decl_id);
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return true;
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}
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auto HandleParseNode(Context& context, Parse::FieldNameAndTypeId node_id)
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-> bool {
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auto [type_node, parsed_type_id] = context.node_stack().PopExprWithNodeId();
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auto [cast_type_inst_id, cast_type_id] =
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ExprAsType(context, type_node, parsed_type_id);
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auto [name_node, name_id] = context.node_stack().PopNameWithNodeId();
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auto parent_class_decl =
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context.scope_stack().GetCurrentScopeAs<SemIR::ClassDecl>();
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CARBON_CHECK(parent_class_decl);
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cast_type_id = AsConcreteType(
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context, cast_type_id, type_node,
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[&] {
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CARBON_DIAGNOSTIC(IncompleteTypeInFieldDecl, Error,
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"field has incomplete type {0}", SemIR::TypeId);
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return context.emitter().Build(type_node, IncompleteTypeInFieldDecl,
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cast_type_id);
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},
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[&] {
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CARBON_DIAGNOSTIC(AbstractTypeInFieldDecl, Error,
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"field has abstract type {0}", SemIR::TypeId);
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return context.emitter().Build(type_node, AbstractTypeInFieldDecl,
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cast_type_id);
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});
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if (cast_type_id == SemIR::ErrorInst::TypeId) {
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cast_type_inst_id = SemIR::ErrorInst::TypeInstId;
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}
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auto& class_info = context.classes().Get(parent_class_decl->class_id);
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auto field_type_id = GetUnboundElementType(
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context, context.types().GetInstId(class_info.self_type_id),
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cast_type_inst_id);
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auto field_id =
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AddInst<SemIR::FieldDecl>(context, node_id,
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{.type_id = field_type_id,
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.name_id = name_id,
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.index = SemIR::ElementIndex::None});
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context.field_decls_stack().AppendToTop(field_id);
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auto name_context =
|
|
context.decl_name_stack().MakeUnqualifiedName(node_id, name_id);
|
|
context.decl_name_stack().AddNameOrDiagnose(
|
|
name_context, field_id,
|
|
context.decl_introducer_state_stack()
|
|
.innermost()
|
|
.modifier_set.GetAccessKind());
|
|
return true;
|
|
}
|
|
|
|
auto HandleParseNode(Context& context, Parse::RefBindingNameId node_id)
|
|
-> bool {
|
|
context.node_stack().Push(node_id);
|
|
return true;
|
|
}
|
|
|
|
auto HandleParseNode(Context& context, Parse::TemplateBindingNameId node_id)
|
|
-> bool {
|
|
context.node_stack().Push(node_id);
|
|
return true;
|
|
}
|
|
|
|
auto HandleParseNode(Context& context, Parse::UnusedPatternId node_id) -> bool {
|
|
return context.TODO(node_id, "unused");
|
|
}
|
|
|
|
} // namespace Carbon::Check
|